建模任意复杂介电性质-一个自动实现的gprMax

Sylwia Majchrowska, I. Giannakis, C. Warren, A. Giannopoulos
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引用次数: 0

摘要

在对探地雷达(GPR)进行建模时,需要准确地模拟具有复杂电磁特性的材料,因为GPR遇到的许多物体都含有水,例如土壤、固化混凝土和充满水的管道。一个广泛使用的开源软件是gprMax,它可以模拟电磁波的传播。采用Yee算法求解麦克斯韦方程组的时域有限差分(FDTD)方法。FDTD方法的一个重大缺点是对具有色散特性的材料进行建模的能力有限,目前仅限于特定的松弛机制,即多德拜、德鲁德和洛伦兹介质。因此,对任意复杂材料的建模应该通过将其近似为这些函数的组合来完成。本文描述了作为2021年谷歌代码之夏(GSoC)计划的一部分进行的工作,该计划旨在开发gprMax中的新模块,该模块可用于使用多debye扩展以自动方式模拟复杂的分散材料。该模块能够模拟Havriliak-Negami, Cole-Cole, Cole-Davidson, Jonscher,复折射率模型,以及用户指定的具有实介电常数和虚介电常数的任意色散材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling Arbitrary Complex Dielectric Properties – an automated implementation for gprMax
There is a need to accurately simulate materials with complex electromagnetic properties when modelling Ground Penetrating Radar (GPR), as many objects encountered with GPR contain water, e.g. soils, curing concrete, and water-filled pipes. One of widely-used open-source software that simulates electromagnetic wave propagation is gprMax. It uses Yee’s algorithm to solve Maxwell’s equations with the Finite-Difference Time-Domain (FDTD) method. A significant drawback of the FDTD method is the limited ability to model materials with dispersive properties, currently narrowed to specific set of relaxation mechanisms, namely multi-Debye, Drude and Lorentz media. Consequently, modelling any arbitrary complex material should be done by approximating it as a combination of these functions. This paper describes work carried out as part of the Google Summer of Code (GSoC) programme 2021 to develop a new module within gprMax that can be used to simulate complex dispersive materials using multi-Debye expansions in an automatic manner. The module is capable of modelling Havriliak-Negami, Cole-Cole, Cole-Davidson, Jonscher, Complex-Refractive Index Models, and indeed any arbitrary dispersive material with real and imaginary permittivity specified by the user.
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